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Nature of Amorphous Hydrophilic Block Affects Self-Assembly of an Artificial Viral Coat Polypeptide

[Image: see text] Consensus motifs for sequences of both crystallizable and amorphous blocks in silks and natural structural analogues of silks vary widely. To design novel silklike polypeptides, an important question is therefore how the nature of either the crystallizable or the amorphous block af...

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Autores principales: Willems, Lione, van Westerveld, Larissa, Roberts, Stefan, Weitzhandler, Isaac, Calcines Cruz, Carlos, Hernandez-Garcia, Armando, Chilkoti, Ashutosh, Mastrobattista, Enrico, van der Oost, John, de Vries, Renko
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2019
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6794640/
https://www.ncbi.nlm.nih.gov/pubmed/31418550
http://dx.doi.org/10.1021/acs.biomac.9b00512
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author Willems, Lione
van Westerveld, Larissa
Roberts, Stefan
Weitzhandler, Isaac
Calcines Cruz, Carlos
Hernandez-Garcia, Armando
Chilkoti, Ashutosh
Mastrobattista, Enrico
van der Oost, John
de Vries, Renko
author_facet Willems, Lione
van Westerveld, Larissa
Roberts, Stefan
Weitzhandler, Isaac
Calcines Cruz, Carlos
Hernandez-Garcia, Armando
Chilkoti, Ashutosh
Mastrobattista, Enrico
van der Oost, John
de Vries, Renko
author_sort Willems, Lione
collection PubMed
description [Image: see text] Consensus motifs for sequences of both crystallizable and amorphous blocks in silks and natural structural analogues of silks vary widely. To design novel silklike polypeptides, an important question is therefore how the nature of either the crystallizable or the amorphous block affects the self-assembly and resulting physical properties of silklike polypeptides. We address herein the influence of the amorphous block on the self-assembly of a silklike polypeptide that was previously designed to encapsulate single DNA molecules into rod-shaped viruslike particles. The polypeptide has a triblock architecture, with a long N-terminal amorphous block, a crystallizable midblock, and a C-terminal DNA-binding block. We compare the self-assembly behavior of a triblock with a very hydrophilic collagen-like amorphous block (GXaaYaa)(132) to that of a triblock with a less hydrophilic elastin-like amorphous block (GSGVP)(80). The amorphous blocks have similar lengths and both adopt a random coil structure in solution. Nevertheless, atomic force microscopy revealed significant differences in the self-assembly behavior of the triblocks. If collagen-like amorphous blocks are used, there is a clear distinction between very short polypeptide-only fibrils and much longer fibrils with encapsulated DNA. If elastin-like amorphous blocks are used, DNA is still encapsulated, but the polypeptide-only fibrils are now much longer and their size distribution partially overlaps with that of the encapsulated DNA fibrils. We attribute the difference to the more hydrophilic nature of the collagen-like amorphous block, which more strongly opposes the growth of polypeptide-only fibrils than the elastin-like amorphous blocks. Our work illustrates that differences in the chemical nature of amorphous blocks can strongly influence the self-assembly and hence the functionality of engineered silklike polypeptides.
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spelling pubmed-67946402019-10-17 Nature of Amorphous Hydrophilic Block Affects Self-Assembly of an Artificial Viral Coat Polypeptide Willems, Lione van Westerveld, Larissa Roberts, Stefan Weitzhandler, Isaac Calcines Cruz, Carlos Hernandez-Garcia, Armando Chilkoti, Ashutosh Mastrobattista, Enrico van der Oost, John de Vries, Renko Biomacromolecules [Image: see text] Consensus motifs for sequences of both crystallizable and amorphous blocks in silks and natural structural analogues of silks vary widely. To design novel silklike polypeptides, an important question is therefore how the nature of either the crystallizable or the amorphous block affects the self-assembly and resulting physical properties of silklike polypeptides. We address herein the influence of the amorphous block on the self-assembly of a silklike polypeptide that was previously designed to encapsulate single DNA molecules into rod-shaped viruslike particles. The polypeptide has a triblock architecture, with a long N-terminal amorphous block, a crystallizable midblock, and a C-terminal DNA-binding block. We compare the self-assembly behavior of a triblock with a very hydrophilic collagen-like amorphous block (GXaaYaa)(132) to that of a triblock with a less hydrophilic elastin-like amorphous block (GSGVP)(80). The amorphous blocks have similar lengths and both adopt a random coil structure in solution. Nevertheless, atomic force microscopy revealed significant differences in the self-assembly behavior of the triblocks. If collagen-like amorphous blocks are used, there is a clear distinction between very short polypeptide-only fibrils and much longer fibrils with encapsulated DNA. If elastin-like amorphous blocks are used, DNA is still encapsulated, but the polypeptide-only fibrils are now much longer and their size distribution partially overlaps with that of the encapsulated DNA fibrils. We attribute the difference to the more hydrophilic nature of the collagen-like amorphous block, which more strongly opposes the growth of polypeptide-only fibrils than the elastin-like amorphous blocks. Our work illustrates that differences in the chemical nature of amorphous blocks can strongly influence the self-assembly and hence the functionality of engineered silklike polypeptides. American Chemical Society 2019-08-16 2019-10-14 /pmc/articles/PMC6794640/ /pubmed/31418550 http://dx.doi.org/10.1021/acs.biomac.9b00512 Text en Copyright © 2019 American Chemical Society This is an open access article published under a Creative Commons Non-Commercial No Derivative Works (CC-BY-NC-ND) Attribution License (http://pubs.acs.org/page/policy/authorchoice_ccbyncnd_termsofuse.html) , which permits copying and redistribution of the article, and creation of adaptations, all for non-commercial purposes.
spellingShingle Willems, Lione
van Westerveld, Larissa
Roberts, Stefan
Weitzhandler, Isaac
Calcines Cruz, Carlos
Hernandez-Garcia, Armando
Chilkoti, Ashutosh
Mastrobattista, Enrico
van der Oost, John
de Vries, Renko
Nature of Amorphous Hydrophilic Block Affects Self-Assembly of an Artificial Viral Coat Polypeptide
title Nature of Amorphous Hydrophilic Block Affects Self-Assembly of an Artificial Viral Coat Polypeptide
title_full Nature of Amorphous Hydrophilic Block Affects Self-Assembly of an Artificial Viral Coat Polypeptide
title_fullStr Nature of Amorphous Hydrophilic Block Affects Self-Assembly of an Artificial Viral Coat Polypeptide
title_full_unstemmed Nature of Amorphous Hydrophilic Block Affects Self-Assembly of an Artificial Viral Coat Polypeptide
title_short Nature of Amorphous Hydrophilic Block Affects Self-Assembly of an Artificial Viral Coat Polypeptide
title_sort nature of amorphous hydrophilic block affects self-assembly of an artificial viral coat polypeptide
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6794640/
https://www.ncbi.nlm.nih.gov/pubmed/31418550
http://dx.doi.org/10.1021/acs.biomac.9b00512
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